A connector assembly for optical fiber cables which provides an increased density of optical fiber connections in a confined space. The assembly includes a front panel defining a first plane; and a connection panel having a face defining a plane having an angle with respect to the first plane.
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1. A remote test unit assembly for an optical fiber network comprising:
a housing including a front side defining a first plane; a power supply module mounted in the housing; a test electronics module mounted in the housing; and a connection sub-assembly mounted in the housing and including a front panel having a plurality of connector panels, each connector panel defining a separate plane positioned at an angle with respect to the first plane, a plurality of connectors provided on the sub-assembly, at least one of said connectors mounted on each said connector panel, and a shelf, coupled to the front panel, having switching electronics coupled between the connectors and the test electronics module supported thereon.
12. A fiber optic test unit assembly, the unit including a power supply and an optical time domain reflectometer mounted in a housing having a front and back, comprising:
a connector assembly mounted in the housing and including; a plurality of connection plates having a plurality of face plates each defining a face plane, each of the face planes being parallel to each other and forming an angle with a plane defined by the face of the case, each face plate including at least one fiber optic cable connector; a shelf, coupled to each connection plate; switching electronics supported on each said shelf and coupled to the optical time domain reflectometer and the connectors; and a back plane connector mounted on the shelf. 7. A test unit of an optical fiber system having a plurality of optical fiber cables, the test unit comprising:
a housing including a front side defining a first plane; an optical time domain reflectometer module in the housing; a power supply module in the housing; switching electronics coupled to the optical time domain reflectometer module; and a plurality of connector assemblies coupled to the housing, having a front panel which includes a plurality of connector panels, each connector panel defining a separate plane having an angle with respect to the first plane and including at least one cable connector, the connector assembly including a shelf, coupled to the front panel, having said switching electronics mounted thereon.
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1. Field of the Invention
The invention relates to a fiber optic cable test system, and specifically a connection assembly for a test system.
2. Description of the Related Art
Large-scale fiber optic networks may consist of hundreds or thousands of fiber optic lines which connect central office units of a network provider to remote terminals or remote offices. It is generally necessary to ensure the integrity of the fiber optic cables themselves by checking the transmission over a given distance through automated means.
Currently, fiber optic testing is performed using optical time domain reflectometer (OTDR) test equipment which typically are stand-alone units or provided in rack-mounted hardware. Such units may provide connection for a few fiberoptic cables, but are not suitable for large-scale remote terminal applications wherein a number of cables may be input to a single test unit. In addition, the size of the unit relative to the number of cables for which they are able to support testing is quite large.
In a typical remote office or remote cabinet, a rack space is provided which allows for the easy mounting of many different types of test equipment in a standard format. Typical dimensions of such rack units are about 19" wide by 12" deep. Although the rack unit has a height of several feet, the height of the test equipment mounted in the rack is a consideration in whether to provide the test equipment in the rack space. To date, a high-density switch network and OTDR unit have not been combined in a confined space suitable for use in rack-mount environments of remote terminals or remote offices. One particular problem with such a configuration is providing the facility to connect a large number of optical fibers within a confined space, and still provide room for modular test electronics to be added to the system.
One problem with providing such a high-density connector configuration is the radius of curvature of optical fiber cable. Typically, such radius is approximately 21/2", thereby providing a minimum space requirement for all optical fiber connections.
It would be highly desirable to provide a number of connections and test interface electronics in a confined environment.
The invention, roughly described, comprises a connector assembly for optical fiber cables. The assembly may be used in a remote test unit for an optical fiber network having a number of fiber optic cable connectors coupled to test electronics. The assembly includes a front panel defining a first plane; and a connection panel having a face defining a plane having an angle with respect to the first plane.
In a further aspect, the connection panel includes a first optical fiber connector. The assembly provides an increased density of optical fiber connections in a confined space.
In an additional aspect, the front panel includes a first flange and a second flange defining said first plane, and the connection panel includes a plurality of connector panels, each residing in a plane having an angle with respect to the first plane of at least 30°.
Still further, the connection panel may be coupled to a drawer assembly, the drawer assembly including test electronics and a back plane connector such that the connection panel may be inserted into the remote test unit. The provision of the connector assembly on an angle increases the density of the cable connections which may be provided in a confined space, thereby allowing the use of the drawer and shelf assembly.
The invention will be described with respect to the particular embodiments thereof. Other objects, features, and advantages of the invention will become apparent with reference to the specification and drawings in which:
FIG. 1 is a perspective view of a remote test unit suitable for installation in a rack of a remote office or remote terminal.
FIG. 2 is a front view of a connector assembly in accordance with the present invention.
FIG. 3 is a top view of a connector assembly and test electronic shelf in accordance with the present invention.
One solution to the problem of testing large-scale fiber optic networks is a remote fiber test system which may include a central office operating system, multiple remote units, and direct local control subcomponents.
In the remote fiber test system, the central operating system may be responsible for alarm handling, demand test control, and system administration functions. In one embodiment, the operating system may be comprised of several work stations networked to a database server. The work stations are also connected to network for communication with remote terminal units. The remote terminal units may be self-contained fiber optic test, access, and system control units. In general, surveillance on the optical fibers under test is performed by rapidly scanning each fiber and comparing the scan to a reference. If a problem is detected, a normal scan is initiated to determine if an alarm should be generated to the central operating system. Control for the RTU is provided via the network and dedicated serial links.
An exemplary remote test unit is shown in FIG. 1. The remote test unit 10 includes a frame 12 having a first side 14, a top 16, a second side 18, a front side (or face) 15, back side 17, and a bottom portion 20. The frame comprises vented aluminum, stainless steel or other suitable rigid material. L-brackets 22 are provided to mount the remote terminal unit 10 in a frame assembly in a remote office or remote cabinet. Remote terminal unit 10 includes a number of test electronic modules which are responsible for test measurement. These components include a test system controller module 26, a power supply module 24, an optical time domain reflectometer (OTDR) module 28, and an optical test access unit 30. Access unit 30 includes four direct connection optical port connectors 32 for the direct connection of optical fibers under test, along with a backplane connector and a 1×4 switch. The 1×4 switch enables connection of connector assemblies 50a-50d which provide a total of twelve optical connectors per assembly. A cover plate 34, manufactured of clear plastic or other suitable material, may be provided to cover the connector assemblies 50. It should be recognized that while a four connector assemblies 50a-50d are shown in FIG. 1, any number of connector assemblies, including zero, may be utilized. If zero connector assemblies are utilized, the direct connectors 32 allow the system to handle four direct optical fiber connections. It should be readily recognized that a control bus back plain exists between the control unit, power supply, OTDR module, and switch modules. It should be recognized that the power supply 24, system controller 26, OTDR unit 28, and access unit 30 are modular and may be removed from the frame 12 to provide for updating of the electronics or customization of the test unit.
It is generally desirable to provide a minimal amount of physical space in order to allow for advanced testing of the fiber optic test system.
FIG. 2 is a front view and FIG. 3 a top view of one connector assembly 50a shown in FIG. 1. As shown in FIG. 2, each connector assembly includes a face plate 52 including a first end flange 53 and a second end flange 54. Flanges 53 and 54 each define a plane α which is parallel to the plane defined by front side 15 of rack assembly 12. Face plate 52 also includes six connector plates 60-65 which each lie in their own plane (demonstrated by planes β and γ) at an angle θ relative to plane α defined by flanges 53 and 54. Each connector plate 60-65 defines its own plane. Connector plate 60 is coupled to flange 53 by a back plate 70. Connection plates 61-65 are likewise connected to previous connector plates by back plates 71-75. Fiber optic connectors 80-91 are mounted in connector plates 60-65, respectively.
Face plate 52 is coupled to a shelf 56 upon which is mounted switch electronics 58 and the back plane connector 59. Shelf 56 is essentially a planar piece of stainless steel which, along with face plate 52, may be inserted into rack assembly 12. Fiber optic cables 45 are provided between connectors 80-91 and switch electronics 58 to couple test cables (not shown) which may be coupled to the connectors 80-91 on assembly 50a.
With respect to the provision of a dense population of cables in a confined space, one limit to this amount of cabling that can be provided is the radius of curvature of fiber optic cable. This radius of curvature is approximately 2.5". This means that the space between the face plate 52 and the cover plate 34, and the depth D which one has to work with is quite limited. By providing the connectors 80-91 on connector plates 60-65, respectively, at an angle θ of approximately 30°, additional room for the radius of curvature of the optical cables is provided within the surface area of shelf 56, thereby allowing the shelf to easily fit in case 12. If the connector plates 60-65 were provided on the same plane a as the flanges 53,54, the radius of curvature of the fiber optic cables would extend the area required for the connector cables 45.
In addition, the angle of the connector plates provides easier access to the base of the connector by moving the cable to the left (in relation to one viewing the front of the test unit). It should be recognized that this principle of the angled connector can be utilized in any number of different density configurations. Connector plates 60-65 may have an angle τ of about 30°, the back plate 70-75 will have a corresponding angle of approximately 60°. It should be further recognized that any number of suitable angles may be utilized within the scope of the present invention. For example, angle τ may be 45° and angle θ may also be 45°. All such embodiments are contemplated as being within the scope of the present invention.
In the remote terminal unit shown in FIG. 1, a 4×48 connector is shown. However, any number of different connector configurations are contemplated within the spirit and scope of the present invention.
The invention may be readily adapted to allow the connector assembly to be utilized with a different type of connector for different applications other than optical fibers wherein the radius of curvature of the connection cables is limited.
Many objects and advantages of the present invention will be apparent to one of average skill in the art. All such features and advantages are contemplated as being within the scope of the invention as defined by the claims and the instant description of the invention.
Poremba, John, Patterson, Jack E.
Patent | Priority | Assignee | Title |
10042136, | Nov 03 2004 | CommScope Technologies LLC | Fiber drop terminal |
10067309, | Mar 01 1999 | CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
10317638, | Oct 05 2012 | CommScope Asia Holdings B.V.; CommScope Technologies LLC | Flexible optical circuit, cassettes, and methods |
10353162, | Jan 02 2018 | Amphenol Fibert Optic Technology (Shenzhen) Co., Ltd. | Detachable mounting cap and fiber optic distribution box having the same |
10359592, | Jan 02 2018 | AMPHENOL FIBER OPTIC TECHNOLOGY SHENZHEN CO , LTD | Detachable mounting cap and fiber optic distribution box having the same |
10473875, | Mar 15 2013 | BISON PATENT LICENSING, LLC | Modular high density telecommunications frame and chassis system |
10481357, | Apr 03 2014 | CommScope Technologies LLC | Fiber optic distribution system |
10545307, | Jan 28 2014 | CommScope Technologies LLC | Slidable fiber optic connection module with cable slack management |
10578821, | Oct 07 2011 | CommScope Technologies LLC | Fiber optic cassette, system, and method |
10732372, | Apr 24 2015 | CommScope, Inc. of North Carolina | Shelf for communications rack or cabinet |
10890729, | Nov 03 2004 | CommScope Technologies LLC | Fiber drop terminal and bracket |
10955633, | Oct 05 2012 | CommScope Asia Holdings B.V.; CommScope Techologies LLC | Flexible optical circuit, cassettes, and methods |
11061197, | Oct 07 2011 | CommScope Technologies LLC | Fiber optic cassette, system, and method |
11249270, | Jan 28 2014 | CommScope Technologies LLC | Slidable fiber optic connection module with cable slack management |
11372165, | Sep 12 2011 | CommScope Technologies LLC | Flexible lensed optical interconnect device for signal distribution |
11409068, | Oct 02 2017 | CommScope Technologies LLC | Fiber optic circuit and preparation method |
11417992, | Jun 12 2019 | LEGRAND DPC, LLC | Modular edge patching system |
11561356, | Oct 07 2011 | CommScope Technologies LLC | Fiber optic cassette, system, and method |
11567278, | Nov 03 2004 | CommScope Technologies LLC | Fiber drop terminal |
11573389, | Oct 05 2012 | CommScope Asia Holdings B.V.; CommScope Techologies LLC | Flexible optical circuit, cassettes, and methods |
11592628, | Sep 28 2012 | CommScope Technologies LLC; CommScope Asia Holdings B.V.; CommScope Connectivity Spain, S.L.; COMMSCOPE CONNECTIVITY UK LIMITED | Fiber optic cassette |
11609400, | Oct 02 2017 | CommScope Technologies LLC | Fiber optic circuit and preparation method |
11733472, | Jan 28 2014 | CommScope Technologies LLC | Slidable fiber optic connection module with cable slack management |
11901677, | Jun 12 2019 | LEGRAND DPC, LLC | Modular edge patching system |
12130487, | Oct 05 2012 | CommScope Asia Holdings B.V.; CommScope Technologies LLC | Flexible optical circuit, cassettes, and methods |
6250816, | Feb 19 1999 | CommScope Technologies LLC | Cable connector plate and method for interconnecting ends of fiber optic cable |
6330168, | Jun 03 1999 | Fujitsu Limited | Card shelf cable management system and method |
6477486, | Sep 10 1998 | Dell USA, L.P. | Automatic location determination of devices under test |
6483709, | Apr 28 2000 | Dell Products L.P.; DELL PRODUCTS L P A TEXAS LIMITED PARTNERSHIP | Cable management solution for rack mounted computing components |
6535682, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with connector modules |
6556763, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with connector modules |
6760531, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
6901200, | Dec 22 2000 | CommScope EMEA Limited; CommScope Technologies LLC | Module and housing for optical fiber distribution and DWDM equipment |
7120347, | Jan 27 2004 | Corning Optical Communications LLC | Multi-port optical connection terminal |
7139461, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
7149398, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
7207835, | Dec 30 2003 | ORTRONICS, INC | Angled patch panel assembly |
7292763, | Mar 08 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber access terminal |
7333707, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
7333708, | Jan 27 2004 | Corning Optical Communications LLC | Multi-port optical connection terminal |
7343078, | Jun 29 2006 | COMMSCOPE, INC OF NORTH CAROLINA | Patch panels with communications connectors that are rotatable about a vertical axis |
7367823, | Dec 23 2003 | CommScope Technologies LLC | Fiber optic module |
7376321, | Aug 09 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Modules including multiple rows of adapters for high density optical fiber distribution frame |
7488205, | Dec 13 2006 | COMMSCOPE, INC OF NORTH CAROLINA | Fixed angled patch panel |
7489849, | Nov 03 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber drop terminal |
7529458, | Jun 29 2006 | CommScope Solutions Properties, LLC | Patch panels with communications connectors that are rotatable about a vertical axis |
7534135, | Jun 05 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications patch panel with angled connector modules |
7539387, | Mar 08 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber access terminal |
7544090, | Jun 05 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications patch panel with angled connector modules |
7555193, | Dec 23 2003 | CommScope Technologies LLC | Fiber optic termination module with retention mechanism |
7558458, | Mar 08 2007 | CommScope EMEA Limited; CommScope Technologies LLC | Universal bracket for mounting a drop terminal |
7591676, | Feb 03 2006 | Ortronics, Inc.; ORTRONICS, INC | Arcuate patch panel assembly |
7627222, | Nov 03 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber drop terminal |
7653282, | Jan 27 2004 | Corning Optical Communications LLC | Multi-port optical connection terminal |
7734037, | Jun 15 2004 | Verizon Patent and Licensing Inc | Remote terminal unit connector |
7740409, | Sep 19 2007 | Corning Optical Communications LLC | Multi-port optical connection terminal |
7805043, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
7805044, | Nov 03 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber drop terminal |
7822313, | Dec 23 2003 | CommScope Technologies LLC | Fiber optic termination system with retention mechanism |
7844158, | Oct 09 2007 | CommScope EMEA Limited; CommScope Technologies LLC | Mini drop terminal |
7903923, | Oct 09 2007 | CommScope EMEA Limited; CommScope Technologies LLC | Drop terminal releasable engagement mechanism |
7914059, | Oct 10 2008 | Reconfigurable console mount having a plurality of interchangeable mounting panels with joints therebetween | |
7934948, | Jun 05 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications patch panel with angled connector modules |
7983521, | Dec 23 2003 | CommScope Technologies LLC | Fiber optic termination system with retention mechanism |
8019192, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
8139913, | Aug 09 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Modules including multiple rows of adapters for high density optical fiber distribution frame |
8187027, | Jun 05 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications patch panel with angled connector modules |
8213761, | Oct 09 2007 | CommScope EMEA Limited; CommScope Technologies LLC | Mini drop terminal |
8358900, | Dec 23 2003 | CommScope Technologies LLC | Fiber optic module with adapters mounted at open front |
8417074, | Nov 21 2008 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber optic telecommunications module |
8491331, | Jun 05 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications patch panel with angled connector modules |
8744228, | May 22 2009 | CommScope, Inc. of North Carolina; COMMSCOPE, INC OF NORTH CAROLINA | Telecommunications patching system with cable management system and related cable management equipment |
8755663, | Oct 28 2010 | Corning Optical Communications LLC | Impact resistant fiber optic enclosures and related methods |
8768134, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
8770861, | Sep 27 2011 | CommScope EMEA Limited; CommScope Technologies LLC | Outside plant termination enclosure |
8873926, | Apr 26 2012 | Corning Optical Communications LLC | Fiber optic enclosures employing clamping assemblies for strain relief of cables, and related assemblies and methods |
8934254, | Jan 19 2009 | Bretford Manufacturing, Inc. | Computer cart |
8958679, | Mar 02 2010 | CommScope EMEA Limited; CommScope Technologies LLC | Fibre-optic telecommunications module |
9033728, | Jun 05 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications patch panel with angled connector modules |
9069151, | Oct 26 2011 | Corning Optical Communications LLC | Composite cable breakout assembly |
9146374, | Sep 28 2012 | CommScope EMEA Limited; CommScope Technologies LLC | Rapid deployment packaging for optical fiber |
9223094, | Oct 05 2012 | TE CONNECTIVITY NEDERLAND B V | Flexible optical circuit, cassettes, and methods |
9356384, | Jun 05 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications patch panel with angled connector modules |
9429728, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
9435975, | Mar 15 2013 | BISON PATENT LICENSING, LLC | Modular high density telecommunications frame and chassis system |
9470869, | Sep 28 2012 | CommScope Technologies LLC | Rapid deployment packaging for optical fiber |
9494758, | Apr 03 2014 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber optic distribution system |
9535229, | Oct 07 2011 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber optic cassette, system, and method |
9585278, | Dec 10 2014 | W INTERCONNECTIONS, INC.; W INTERCONNECTIONS, INC | Terminal assembly module for connecting an industrial controller to pre-existing I/O wiring |
9755381, | Jun 05 1998 | CommScope Technologies LLC | Telecommunications patch panel with angled connector modules |
9810868, | Mar 01 1999 | CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
9851522, | Nov 03 2004 | CommScope Technologies LLC | Fiber drop terminal |
9851524, | Jan 28 2014 | CommScope EMEA Limited; CommScope Technologies LLC | Slidable fiber optic connection module with cable slack management |
9874711, | Oct 05 2012 | CommScope Asia Holdings B.V.; CommScope Technologies LLC | Flexible optical circuit, cassettes, and methods |
9927591, | Sep 28 2012 | CommScope Technologies LLC | Rapid deployment packaging for optical fiber |
9952398, | Mar 15 2013 | BISON PATENT LICENSING, LLC | Modular high density telecommunications frame and chassis system |
9952400, | Oct 07 2011 | CommScope Technologies LLC | Fiber optic cassette, system, and method |
9977212, | Apr 03 2014 | CommScope Technologies LLC | Fiber optic distribution system |
D465455, | Dec 11 2000 | CommScope EMEA Limited; CommScope Technologies LLC | Module for fiber optic equipment |
RE40358, | Jul 27 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Outside plant fiber distribution apparatus and method |
RE41777, | Jul 27 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Outside plant fiber distribution apparatus and method |
RE42258, | Jul 27 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Outside plant fiber distribution apparatus and method |
RE43762, | Mar 08 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber access terminal |
RE44758, | Mar 20 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber interconnect cabinets, termination modules and fiber connectivity management for the same |
RE46945, | Mar 20 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber interconnect cabinets, termination modules and fiber connectivity management for the same |
RE48675, | Mar 20 2003 | CommScope Technologies LLC | Optical fiber interconnect cabinets, termination modules and fiber connectivity management for the same |
Patent | Priority | Assignee | Title |
4289398, | Dec 04 1978 | AMETEK, INC | Optical time domain reflectometer |
4875772, | Oct 04 1988 | Laser Precision Corporation | Remotely controlled optical time domain reflectometer serving a plurality of fiber optic cables |
4898448, | May 02 1988 | SIECOR PUERTO RICO, INC | Fiber distribution panel |
5137351, | Jul 24 1991 | Optical time domain reflectometer for selective testing of optical fibers with different core diameters | |
5363467, | May 28 1993 | Minnesota Mining and Manufacturing Company | Compact fiber optic housing |
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Apr 02 1997 | POREMBA, JOHN | Wiltron Company | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 008523 | /0987 | |
Apr 02 1997 | PATTERSON, JACK E | Wiltron Company | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 008523 | /0987 | |
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Oct 01 1997 | Wiltron Company | Anritsu Company | CHANGE OF NAME SEE DOCUMENT FOR DETAILS | 010052 | /0559 |
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